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“Intro to Testing Machine Learning Models” is a practical course designed to introduce learners to essential techniques for evaluating and validating machine learning models. Testing ML models is a critical step to ensure their accuracy, robustness, and generalizability before deployment. Participants explore different types of testing, including train-test splits, cross-validation, and A/B testing. The course covers key evaluation metrics for various problem types—such as accuracy, precision, recall, F1 score for classification, and mean squared error for regression. Learners also study...
Carlos Kidman
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